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		<title>Distributed Computing News -- ScienceDaily</title>
		<link>https://www.sciencedaily.com/news/computers_math/distributed_computing/</link>
		<description>Distributed computing and computer grids. From supercomputers to computer grids, browse innovations from computer programmers and scientists around the world.</description>
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		<pubDate>Thu, 24 Sep 2026 00:17:35 EDT</pubDate>
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			<title>Distributed Computing News -- ScienceDaily</title>
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			<title>Scientists find that “perfect” systems may be surprisingly fragile</title>
			<link>https://www.sciencedaily.com/releases/2026/09/260919031022.htm</link>
			<description>Complex systems may work better when their parts are not perfectly alike. Northwestern physicists found that carefully balanced variation, or “disorder,” can make networks such as power grids, ecosystems, neurons, and materials more stable. Even random differences sometimes improved stability compared with completely uniform systems. The discovery could help researchers design more resilient technologies and explain why natural systems are so rarely perfectly uniform.</description>
			<pubDate>Sat, 19 Sep 2026 07:26:53 EDT</pubDate>
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			<title>Tiny nanolaser could cut computer energy use in half</title>
			<link>https://www.sciencedaily.com/releases/2026/09/260911003858.htm</link>
			<description>Scientists have created an ultra-small nanolaser that could eventually allow microchips to transmit information with light instead of electricity, potentially making computers faster while cutting energy use roughly in half. Thousands of the lasers could fit on a single chip, opening possibilities for more efficient data centers, smartphones, and advanced medical sensors.</description>
			<pubDate>Fri, 11 Sep 2026 08:03:26 EDT</pubDate>
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			<title>Scientists just made quantum computer operations 1,000 times faster</title>
			<link>https://www.sciencedaily.com/releases/2026/09/260911003845.htm</link>
			<description>Researchers have found a way to perform certain quantum operations more than 1,000 times faster, cutting thousands of repeated control cycles down to just one. The advance could reduce errors and bring reliable, fault-tolerant quantum computers closer to reality.</description>
			<pubDate>Fri, 11 Sep 2026 07:52:30 EDT</pubDate>
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			<title>A “quantum bath” puts quantum entanglement on autopilot</title>
			<link>https://www.sciencedaily.com/releases/2026/08/260830000002.htm</link>
			<description>Physicists have demonstrated a new way to entangle distant quantum bits without the constant measurements and active control normally required. The team created a “quantum bath,” a shared environment filled with correlated microwave photons that automatically pushes separated qubits into an entangled state and helps keep them there. The experiment confirms a theoretical prediction made more than 20 years ago and could offer a simpler way to connect modules in future quantum computers.</description>
			<pubDate>Mon, 31 Aug 2026 09:08:37 EDT</pubDate>
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			<title>IBM quantum computer solves classically intractable problem in 15 minutes</title>
			<link>https://www.sciencedaily.com/releases/2026/08/260829035219.htm</link>
			<description>IBM and University of Chicago researchers have completed a quantum computation that leading classical methods could not practically reproduce. The system used 70 error-corrected logical qubits and finished the task in roughly 15 minutes while also providing statistical evidence that the result was reliable.</description>
			<pubDate>Sun, 30 Aug 2026 10:08:13 EDT</pubDate>
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			<title>NASA just used satellites and debris to navigate without GPS</title>
			<link>https://www.sciencedaily.com/releases/2026/08/260826055450.htm</link>
			<description>NASA has successfully tested a system that allows satellites to navigate without GPS by using other spacecraft and debris as landmarks in orbit. In just three days, FALCON also improved the known orbits of more than 200 space objects completely autonomously.</description>
			<pubDate>Wed, 26 Aug 2026 19:27:35 EDT</pubDate>
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			<title>Scientists turn DNA into a memory device that uses 100x less power</title>
			<link>https://www.sciencedaily.com/releases/2026/08/260816044853.htm</link>
			<description>Researchers combined synthetic DNA with a semiconductor to create an ultra-low-power memory device capable of storing and processing information in the same place. The bio-hybrid technology could eventually help make AI systems and next-generation computers far more energy efficient.</description>
			<pubDate>Mon, 17 Aug 2026 04:06:45 EDT</pubDate>
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			<title>New fuel cell breakthrough could help power energy-hungry data centers</title>
			<link>https://www.sciencedaily.com/releases/2026/08/260807035140.htm</link>
			<description>A new nanostructured carbon design lets fuel-cell catalysts use tiny amounts of platinum while remaining remarkably stable and efficient. The breakthrough could help hydrogen fuel cells become a more practical way to power data centers, vehicles, and other energy-intensive technologies.</description>
			<pubDate>Sat, 08 Aug 2026 10:09:02 EDT</pubDate>
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			<title>An ordinary laptop solved a problem thought to require a quantum computer</title>
			<link>https://www.sciencedaily.com/releases/2026/07/260719040000.htm</link>
			<description>A quantum problem once described as impossible for classical computers has now been solved using relatively modest hardware. Researchers used tensor networks to compress the overwhelming wave function created by hundreds of entangled qubits, allowing some calculations to run on a laptop. Their results matched both theoretical predictions and simulations performed with a quantum computer. The method could open new paths for exploring quantum dynamics and materials.</description>
			<pubDate>Mon, 20 Jul 2026 03:40:09 EDT</pubDate>
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			<title>New programmable photonic chip can control how fast light moves</title>
			<link>https://www.sciencedaily.com/releases/2026/07/260718010149.htm</link>
			<description>Scientists have created a programmable optical chip that can slow light on demand, giving engineers far greater control over how optical signals propagate through a circuit. The technology could provide the delays, synchronization, and buffering functions needed to make light-based computing more practical. A single chip could eventually perform several tasks that currently require separate devices, potentially reducing energy use, cost, and complexity in AI servers and data centers.</description>
			<pubDate>Tue, 21 Jul 2026 22:43:34 EDT</pubDate>
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			<title>Tiny magnetic waves could unlock quantum computers the size of a penny</title>
			<link>https://www.sciencedaily.com/releases/2026/06/260626030431.htm</link>
			<description>A major breakthrough in quantum technology has turned magnons, tiny magnetic waves once considered too short-lived for practical use, into promising carriers of quantum information. Researchers extended their lifetime by nearly 100 times, reaching up to 18 microseconds, and discovered that the main limitation is not a law of physics but the purity of the material itself. That means future improvements could come from better manufacturing rather than entirely new discoveries.</description>
			<pubDate>Thu, 02 Jul 2026 02:48:14 EDT</pubDate>
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			<title>Quantum mechanics once baffled scientists. Now it&#039;s changing the world</title>
			<link>https://www.sciencedaily.com/releases/2026/06/260624025516.htm</link>
			<description>Quantum mechanics has journeyed from a strange and controversial idea to the foundation of some of humanity’s most advanced technologies. Now researchers are pushing its boundaries even further, with potential breakthroughs in energy, medicine, computing, and our understanding of the universe.</description>
			<pubDate>Sun, 05 Jul 2026 14:13:44 EDT</pubDate>
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			<title>SpaceX wants to build AI data centers in space. Will it work?</title>
			<link>https://www.sciencedaily.com/releases/2026/06/260618041501.htm</link>
			<description>The race to build data centers in space is gaining momentum as AI drives unprecedented demand for computing power. Orbital facilities could tap into abundant solar energy and avoid many of the environmental challenges faced on Earth. Yet space remains a harsh and expensive place to operate, with major hurdles including cooling, maintenance, radiation exposure, and orbital debris.</description>
			<pubDate>Thu, 18 Jun 2026 23:43:09 EDT</pubDate>
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			<title>Brain-inspired chip runs near absolute zero and could transform quantum computing</title>
			<link>https://www.sciencedaily.com/releases/2026/06/260612032024.htm</link>
			<description>Scientists at the University of Hong Kong have created a remarkable new type of brain-inspired chip that can function just above absolute zero, one of the coldest environments imaginable. By using a standard silicon carbide transistor in a completely new way, the team made a single device behave like an energy-efficient neuron, firing electrical “spikes” similar to those in the human brain.</description>
			<pubDate>Fri, 12 Jun 2026 06:38:54 EDT</pubDate>
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			<title>One-way quantum synchronization could make quantum computers more reliable</title>
			<link>https://www.sciencedaily.com/releases/2026/06/260611024619.htm</link>
			<description>Scientists at RIKEN have proposed a new way to make quantum systems synchronize in only one direction—like a one-way street for sound particles known as phonons. The breakthrough combines two quantum effects to create a form of one-way quantum synchronization that remains surprisingly stable even when exposed to manufacturing flaws and environmental noise, two major obstacles that have long hindered real-world quantum technologies.</description>
			<pubDate>Fri, 12 Jun 2026 02:05:41 EDT</pubDate>
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			<title>New 3D silicon chip breakthrough could extend Moore’s Law for years</title>
			<link>https://www.sciencedaily.com/releases/2026/05/260530053412.htm</link>
			<description>As traditional chip miniaturization slows, researchers have found a way to pack more computing power into the same space by stacking silicon circuits in multiple layers. The new process uses ultra-thin silicon membranes and low-temperature manufacturing techniques to overcome a major obstacle that has long blocked the production of true 3D chips.</description>
			<pubDate>Sat, 30 May 2026 06:26:24 EDT</pubDate>
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			<title>Stanford quantum computing breakthrough uses twisted light to work without extreme cooling</title>
			<link>https://www.sciencedaily.com/releases/2026/05/260528074028.htm</link>
			<description>A new room-temperature quantum device uses twisted light to entangle photons and electrons, overcoming one of the biggest hurdles in quantum technology. The breakthrough could pave the way for smaller, cheaper quantum systems with applications ranging from secure communications to future AI and computing platforms.</description>
			<pubDate>Sat, 30 May 2026 01:08:07 EDT</pubDate>
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			<title>Forget electrons, this breakthrough uses light-matter particles to power AI</title>
			<link>https://www.sciencedaily.com/releases/2026/05/260518041341.htm</link>
			<description>Researchers at Penn have created a hybrid light-matter particle that could dramatically speed up AI computing while using far less energy. The breakthrough may help replace some electronic computing processes with ultra-efficient light-based technology.</description>
			<pubDate>Mon, 18 May 2026 20:23:26 EDT</pubDate>
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			<title>NASA’s new AI space chip could let spacecraft think for themselves</title>
			<link>https://www.sciencedaily.com/releases/2026/05/260515002134.htm</link>
			<description>NASA is testing a next-generation space computer chip that could give spacecraft the ability to operate far more independently in deep space. The radiation-hardened processor is showing performance levels hundreds of times beyond current spaceflight computers while surviving punishing tests designed to mimic the harsh conditions of space. The technology could enable AI-powered spacecraft, faster scientific discoveries, and smarter missions to the Moon and Mars.</description>
			<pubDate>Fri, 15 May 2026 04:13:15 EDT</pubDate>
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			<title>Quantum breakthrough could revolutionize teleportation and computing</title>
			<link>https://www.sciencedaily.com/releases/2026/05/260513034640.htm</link>
			<description>Scientists in Japan have developed a new way to instantly detect elusive quantum “W states,” a major milestone for quantum technology. The breakthrough could help unlock faster quantum communication, teleportation, and powerful new computing systems.</description>
			<pubDate>Wed, 13 May 2026 03:55:23 EDT</pubDate>
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			<title>New quantum algorithm solves “impossible” materials problem in seconds</title>
			<link>https://www.sciencedaily.com/releases/2026/05/260512202355.htm</link>
			<description>A new quantum-inspired algorithm has cracked a problem so massive that conventional supercomputers struggle to even approach it. Researchers used the method to simulate extraordinarily complex quantum materials known as quasicrystals, opening the door to powerful new quantum devices and ultra-efficient electronics. The work could help scientists design advanced topological qubits and materials for future quantum computers.</description>
			<pubDate>Wed, 13 May 2026 03:33:27 EDT</pubDate>
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			<title>JUPITER supercomputer breaks world record with 50-qubit quantum simulation</title>
			<link>https://www.sciencedaily.com/releases/2026/05/260510234715.htm</link>
			<description>Scientists in Germany have pulled off a staggering computing feat by fully simulating a 50-qubit quantum computer for the first time ever using Europe’s new exascale supercomputer, JUPITER. The breakthrough shatters the previous 48-qubit record and highlights just how powerful next-generation supercomputers have become.</description>
			<pubDate>Sun, 10 May 2026 23:47:15 EDT</pubDate>
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			<title>Artificial neurons successfully communicate with living brain cells</title>
			<link>https://www.sciencedaily.com/releases/2026/04/260417225020.htm</link>
			<description>Engineers at Northwestern University have taken a striking leap toward merging machines with the human brain by printing artificial neurons that can actually communicate with real ones. These flexible, low-cost devices generate lifelike electrical signals capable of activating living brain cells, a breakthrough demonstrated in mouse brain tissue.</description>
			<pubDate>Sat, 18 Apr 2026 03:32:36 EDT</pubDate>
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			<title>Quantum AI just got shockingly good at predicting chaos</title>
			<link>https://www.sciencedaily.com/releases/2026/04/260417224455.htm</link>
			<description>Researchers have shown that blending quantum computing with AI can dramatically improve predictions of complex, chaotic systems. By letting a quantum computer identify hidden patterns in data, the AI becomes more accurate and stable over time. The method outperformed standard models while using far less memory. This could have big implications for fields like climate science, energy, and medicine.</description>
			<pubDate>Fri, 17 Apr 2026 23:51:09 EDT</pubDate>
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			<title>This new chip could slash data center energy waste</title>
			<link>https://www.sciencedaily.com/releases/2026/04/260409101103.htm</link>
			<description>A new chip design from UC San Diego could make data centers far more energy-efficient by rethinking how power is converted for GPUs. By combining vibrating piezoelectric components with a clever circuit layout, the system overcomes limitations of traditional designs. The prototype achieved impressive efficiency and delivered much more power than previous attempts. Though not ready for widespread use yet, it points to a promising future for high-performance computing.</description>
			<pubDate>Fri, 10 Apr 2026 08:45:22 EDT</pubDate>
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			<title>Quantum computers keep losing data. This breakthrough finally tracks it</title>
			<link>https://www.sciencedaily.com/releases/2026/04/260407193857.htm</link>
			<description>Quantum computers struggle with a major flaw: their information vanishes unpredictably. Scientists have now created a new method that can measure this loss over 100 times faster than before. By tracking changes in near real time, researchers can finally see what’s going wrong inside these systems. This could be a big step toward making quantum computers stable and practical.</description>
			<pubDate>Wed, 08 Apr 2026 01:02:44 EDT</pubDate>
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			<title>Laser-powered wireless hits 360 Gbps and uses half the energy of Wi-Fi</title>
			<link>https://www.sciencedaily.com/releases/2026/04/260402042734.htm</link>
			<description>A new breakthrough in wireless technology could dramatically boost internet speeds while cutting energy use—by switching from radio waves to light. Researchers have developed a tiny chip packed with dozens of miniature lasers that can transmit massive amounts of data simultaneously, reaching speeds over 360 gigabits per second in early tests.</description>
			<pubDate>Thu, 02 Apr 2026 15:58:03 EDT</pubDate>
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			<title>Physicists just turned glass into a powerful quantum security device</title>
			<link>https://www.sciencedaily.com/releases/2026/03/260324024255.htm</link>
			<description>Scientists have turned simple glass into a powerful quantum communication device that could safeguard data against future quantum attacks. The chip combines stability, speed, and versatility—handling both ultra-secure encryption and record-breaking random number generation in one compact system.</description>
			<pubDate>Tue, 24 Mar 2026 03:43:30 EDT</pubDate>
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			<title>Scientists used 7,000 GPUs to simulate a tiny quantum chip in extreme detail</title>
			<link>https://www.sciencedaily.com/releases/2026/03/260317064504.htm</link>
			<description>Researchers have pushed quantum chip design into a new era by simulating every physical detail before fabrication. Using a supercomputer with nearly 7,000 GPUs, they modeled how signals travel and interact inside an ultra-tiny chip. Unlike earlier “black box” approaches, this method captures real materials, layouts, and qubit behavior. The result is a powerful new way to spot problems early and build better quantum hardware faster.</description>
			<pubDate>Tue, 17 Mar 2026 23:35:04 EDT</pubDate>
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			<title>Scientists finally see the atomic flaws hiding inside computer chips</title>
			<link>https://www.sciencedaily.com/releases/2026/03/260305182657.htm</link>
			<description>Researchers at Cornell University have developed a powerful imaging technique that reveals atomic scale defects inside computer chips for the first time. Using an advanced electron microscopy method, the team mapped the exact positions of atoms inside tiny transistor structures and uncovered small imperfections nicknamed “mouse bites.” These defects form during the complex manufacturing process and can disrupt how electrons flow through a chip’s channels, which are only about 15 to 18 atoms wide.</description>
			<pubDate>Thu, 05 Mar 2026 19:42:42 EST</pubDate>
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			<title>Quantum computer breakthrough tracks qubit fluctuations in real time</title>
			<link>https://www.sciencedaily.com/releases/2026/02/260219040756.htm</link>
			<description>Qubits, the heart of quantum computers, can change performance in fractions of a second — but until now, scientists couldn’t see it happening. Researchers at NBI have built a real-time monitoring system that tracks these rapid fluctuations about 100 times faster than previous methods. Using fast FPGA-based control hardware, they can instantly identify when a qubit shifts from “good” to “bad.” The discovery opens a new path toward stabilizing and scaling future quantum processors.</description>
			<pubDate>Fri, 20 Feb 2026 09:03:48 EST</pubDate>
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			<title>Brain inspired machines are better at math than expected</title>
			<link>https://www.sciencedaily.com/releases/2026/02/260213223923.htm</link>
			<description>Neuromorphic computers modeled after the human brain can now solve the complex equations behind physics simulations — something once thought possible only with energy-hungry supercomputers. The breakthrough could lead to powerful, low-energy supercomputers while revealing new secrets about how our brains process information.</description>
			<pubDate>Sat, 14 Feb 2026 10:19:40 EST</pubDate>
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			<title>A clever quantum trick brings practical quantum computers closer</title>
			<link>https://www.sciencedaily.com/releases/2026/02/260206012208.htm</link>
			<description>Quantum computers struggle because their qubits are incredibly easy to disrupt, especially during calculations. A new experiment shows how to perform quantum operations while continuously fixing errors, rather than pausing protection to compute. The team used a method called lattice surgery to split a protected qubit into two entangled ones without losing control. This breakthrough moves quantum machines closer to scaling up into something truly powerful.</description>
			<pubDate>Fri, 06 Feb 2026 09:10:15 EST</pubDate>
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			<title>A tiny light trap could unlock million qubit quantum computers</title>
			<link>https://www.sciencedaily.com/releases/2026/02/260201223737.htm</link>
			<description>A new light-based breakthrough could help quantum computers finally scale up. Stanford researchers created miniature optical cavities that efficiently collect light from individual atoms, allowing many qubits to be read at once. The team has already demonstrated working arrays with dozens and even hundreds of cavities. The approach could eventually support massive quantum networks with millions of qubits.</description>
			<pubDate>Mon, 02 Feb 2026 00:01:14 EST</pubDate>
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			<title>Scientists say quantum tech has reached its transistor moment</title>
			<link>https://www.sciencedaily.com/releases/2026/01/260127010136.htm</link>
			<description>Quantum technology has reached a turning point, echoing the early days of modern computing. Researchers say functional quantum systems now exist, but scaling them into truly powerful machines will require major advances in engineering and manufacturing. By comparing different quantum platforms, the study reveals both impressive progress and steep challenges ahead. History suggests the payoff could be enormous—but not immediate.</description>
			<pubDate>Tue, 27 Jan 2026 06:17:54 EST</pubDate>
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			<title>This simple fix makes blockchain almost twice as fast</title>
			<link>https://www.sciencedaily.com/releases/2026/01/260122073616.htm</link>
			<description>Blockchain could make smart devices far more secure, but sluggish data sharing has held it back. Researchers found that messy network connections cause massive slowdowns by flooding systems with duplicate data. Their new “Dual Perigee” method lets devices automatically favor faster connections and ditch slower ones. In tests, it nearly halved delays, making real-time IoT services far more practical.</description>
			<pubDate>Thu, 22 Jan 2026 07:36:16 EST</pubDate>
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			<title>Unbreakable? Researchers warn quantum computers have serious security flaws</title>
			<link>https://www.sciencedaily.com/releases/2026/01/260120000330.htm</link>
			<description>Quantum computers could revolutionize everything from drug discovery to business analytics—but their incredible power also makes them surprisingly vulnerable. New research from Penn State warns that today’s quantum machines are not just futuristic tools, but potential gold mines for hackers. The study reveals that weaknesses can exist not only in software, but deep within the physical hardware itself, where valuable algorithms and sensitive data may be exposed.</description>
			<pubDate>Tue, 20 Jan 2026 09:03:36 EST</pubDate>
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			<title>Tiny 3D-printed light cages could unlock the quantum internet</title>
			<link>https://www.sciencedaily.com/releases/2026/01/260106001907.htm</link>
			<description>A new chip-based quantum memory uses nanoprinted “light cages” to trap light inside atomic vapor, enabling fast, reliable storage of quantum information. The structures can be fabricated with extreme precision and filled with atoms in days instead of months. Multiple memories can operate side by side on a single chip, all performing nearly identically. The result is a powerful, scalable building block for future quantum communication and computing.</description>
			<pubDate>Tue, 06 Jan 2026 02:14:34 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2026/01/260106001907.htm</guid>
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			<title>AI may not need massive training data after all</title>
			<link>https://www.sciencedaily.com/releases/2025/12/251228074457.htm</link>
			<description>New research shows that AI doesn’t need endless training data to start acting more like a human brain. When researchers redesigned AI systems to better resemble biological brains, some models produced brain-like activity without any training at all. This challenges today’s data-hungry approach to AI development. The work suggests smarter design could dramatically speed up learning while slashing costs and energy use.</description>
			<pubDate>Sun, 04 Jan 2026 19:08:41 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/12/251228074457.htm</guid>
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			<title>This tiny chip could change the future of quantum computing</title>
			<link>https://www.sciencedaily.com/releases/2025/12/251226045341.htm</link>
			<description>A new microchip-sized device could dramatically accelerate the future of quantum computing. It controls laser frequencies with extreme precision while using far less power than today’s bulky systems. Crucially, it’s made with standard chip manufacturing, meaning it can be mass-produced instead of custom-built. This opens the door to quantum machines far larger and more powerful than anything possible today.</description>
			<pubDate>Fri, 26 Dec 2025 10:38:10 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/12/251226045341.htm</guid>
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			<title>“Purifying” photons: Scientists found a way to clean light itself</title>
			<link>https://www.sciencedaily.com/releases/2025/12/251223084534.htm</link>
			<description>A new discovery shows that messy, stray light can be used to clean up quantum systems instead of disrupting them. University of Iowa researchers found that unwanted photons produced by lasers can be canceled out by carefully tuning the light itself. The result is a much purer stream of single photons, a key requirement for quantum computing and secure communication. The work could help push photonic quantum technology closer to real-world use.</description>
			<pubDate>Tue, 23 Dec 2025 09:51:14 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/12/251223084534.htm</guid>
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			<title>A new tool is revealing the invisible networks inside cancer</title>
			<link>https://www.sciencedaily.com/releases/2025/12/251221043216.htm</link>
			<description>Spanish researchers have created a powerful new open-source tool that helps uncover the hidden genetic networks driving cancer. Called RNACOREX, the software can analyze thousands of molecular interactions at once, revealing how genes communicate inside tumors and how those signals relate to patient survival. Tested across 13 different cancer types using international data, the tool matches the predictive power of advanced AI systems—while offering something rare in modern analytics: clear, interpretable explanations that help scientists understand why tumors behave the way they do.</description>
			<pubDate>Sun, 21 Dec 2025 07:29:28 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/12/251221043216.htm</guid>
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			<title>Scientists prove “impossible” Earth-to-space quantum link is feasible</title>
			<link>https://www.sciencedaily.com/releases/2025/12/251217082515.htm</link>
			<description>Researchers have shown that quantum signals can be sent from Earth up to satellites, not just down from space as previously believed. This breakthrough could make global quantum networks far more powerful, affordable, and practical.</description>
			<pubDate>Wed, 17 Dec 2025 11:25:24 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/12/251217082515.htm</guid>
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			<title>Scientists reveal a tiny brain chip that streams thoughts in real time</title>
			<link>https://www.sciencedaily.com/releases/2025/12/251209234139.htm</link>
			<description>BISC is an ultra-thin neural implant that creates a high-bandwidth wireless link between the brain and computers. Its tiny single-chip design packs tens of thousands of electrodes and supports advanced AI models for decoding movement, perception, and intent. Initial clinical work shows it can be inserted through a small opening in the skull and remain stable while capturing detailed neural activity. The technology could reshape treatments for epilepsy, paralysis, and blindness.</description>
			<pubDate>Tue, 09 Dec 2025 23:54:39 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/12/251209234139.htm</guid>
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			<title>Scientists just found a way to tell if quantum computers are wrong</title>
			<link>https://www.sciencedaily.com/releases/2025/11/251130205506.htm</link>
			<description>Researchers unveiled a new technique that validates quantum computer results—especially those from GBS devices—in minutes instead of millennia. Their findings expose unexpected errors in a landmark experiment, offering a crucial step toward truly reliable quantum machines.</description>
			<pubDate>Mon, 01 Dec 2025 10:19:09 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/11/251130205506.htm</guid>
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			<title>Quantum computers just simulated physics too complex for supercomputers</title>
			<link>https://www.sciencedaily.com/releases/2025/11/251118220104.htm</link>
			<description>Researchers created scalable quantum circuits capable of simulating fundamental nuclear physics on more than 100 qubits. These circuits efficiently prepare complex initial states that classical computers cannot handle. The achievement demonstrates a new path toward simulating particle collisions and extreme forms of matter. It may ultimately illuminate long-standing cosmic mysteries.</description>
			<pubDate>Wed, 19 Nov 2025 12:32:19 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/11/251118220104.htm</guid>
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			<title>Physicists reveal a new quantum state where electrons run wild</title>
			<link>https://www.sciencedaily.com/releases/2025/11/251116105625.htm</link>
			<description>Electrons can freeze into strange geometric crystals and then melt back into liquid-like motion under the right quantum conditions. Researchers identified how to tune these transitions and even discovered a bizarre “pinball” state where some electrons stay locked in place while others dart around freely. Their simulations help explain how these phases form and how they might be harnessed for advanced quantum technologies.</description>
			<pubDate>Sun, 16 Nov 2025 10:56:25 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/11/251116105625.htm</guid>
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			<title>Princeton’s new quantum chip marks a major step toward quantum advantage</title>
			<link>https://www.sciencedaily.com/releases/2025/11/251116105622.htm</link>
			<description>A Princeton team built a new tantalum-silicon qubit that survives for over a millisecond, far surpassing today’s best devices. The design tackles surface defects and substrate losses that have limited transmon qubits for years. Easy to integrate into existing quantum chips, the approach could make processors like Google’s vastly more powerful.</description>
			<pubDate>Mon, 17 Nov 2025 01:07:02 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/11/251116105622.htm</guid>
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			<title>AI creates the first 100-billion-star Milky Way simulation</title>
			<link>https://www.sciencedaily.com/releases/2025/11/251116105515.htm</link>
			<description>Researchers combined deep learning with high-resolution physics to create the first Milky Way model that tracks over 100 billion stars individually. Their AI learned how gas behaves after supernovae, removing one of the biggest computational bottlenecks in galactic modeling. The result is a simulation hundreds of times faster than current methods.</description>
			<pubDate>Sun, 16 Nov 2025 12:09:23 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/11/251116105515.htm</guid>
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			<title>A single beam of light runs AI with supercomputer power</title>
			<link>https://www.sciencedaily.com/releases/2025/11/251115095923.htm</link>
			<description>Aalto University researchers have developed a method to execute AI tensor operations using just one pass of light. By encoding data directly into light waves, they enable calculations to occur naturally and simultaneously. The approach works passively, without electronics, and could soon be integrated into photonic chips. If adopted, it promises dramatically faster and more energy-efficient AI systems.</description>
			<pubDate>Sun, 16 Nov 2025 02:00:12 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/11/251115095923.htm</guid>
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			<title>A radical upgrade pushes quantum links 200x farther</title>
			<link>https://www.sciencedaily.com/releases/2025/11/251112111019.htm</link>
			<description>Scientists have developed a new way to build rare-earth crystals that boosts quantum coherence to tens of milliseconds. This leap could extend quantum communication distances from city blocks to entire continents. The method uses atom-by-atom construction for unprecedented material purity.</description>
			<pubDate>Thu, 13 Nov 2025 06:46:51 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/11/251112111019.htm</guid>
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			<title>Stanford discovers an extraordinary crystal that could transform quantum tech</title>
			<link>https://www.sciencedaily.com/releases/2025/11/251108083912.htm</link>
			<description>Stanford scientists found that strontium titanate improves its performance when frozen to near absolute zero, showing extraordinary optical and mechanical behavior. Its nonlinear and piezoelectric properties make it ideal for cryogenic quantum technologies. Once overlooked, this cheap, accessible material now promises to advance lasers, computing, and space exploration alike.</description>
			<pubDate>Sun, 09 Nov 2025 01:25:50 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/11/251108083912.htm</guid>
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			<title>Artificial neurons that behave like real brain cells</title>
			<link>https://www.sciencedaily.com/releases/2025/11/251105050723.htm</link>
			<description>USC researchers built artificial neurons that replicate real brain processes using ion-based diffusive memristors. These devices emulate how neurons use chemicals to transmit and process signals, offering massive energy and size advantages. The technology may enable brain-like, hardware-based learning systems. It could transform AI into something closer to natural intelligence.</description>
			<pubDate>Wed, 05 Nov 2025 10:34:51 EST</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/11/251105050723.htm</guid>
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			<title>A revolutionary DNA search engine is speeding up genetic discovery</title>
			<link>https://www.sciencedaily.com/releases/2025/10/251027224917.htm</link>
			<description>ETH Zurich scientists have created “MetaGraph,” a revolutionary DNA search engine that functions like Google for genetic data. By compressing global genomic datasets by a factor of 300, it allows researchers to search trillions of DNA and RNA sequences in seconds instead of downloading massive data files. The tool could transform biomedical research and pandemic response.</description>
			<pubDate>Tue, 28 Oct 2025 13:10:05 EDT</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/10/251027224917.htm</guid>
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			<title>Breakthrough optical processor lets AI compute at the speed of light</title>
			<link>https://www.sciencedaily.com/releases/2025/10/251027224833.htm</link>
			<description>Researchers at Tsinghua University developed the Optical Feature Extraction Engine (OFE2), an optical engine that processes data at 12.5 GHz using light rather than electricity. Its integrated diffraction and data preparation modules enable unprecedented speed and efficiency for AI tasks. Demonstrations in imaging and trading showed improved accuracy, lower latency, and reduced power demand. This innovation pushes optical computing toward real-world, high-performance AI.</description>
			<pubDate>Tue, 28 Oct 2025 09:14:28 EDT</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/10/251027224833.htm</guid>
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			<title>Living computers powered by mushrooms</title>
			<link>https://www.sciencedaily.com/releases/2025/10/251026021724.htm</link>
			<description>Scientists have found that mushrooms can act as organic memory devices, mimicking neural activity while consuming minimal power. The Ohio State team grew and trained shiitake fungi to perform like computer chips, capable of switching between electrical states thousands of times per second. These fungal circuits are biodegradable and low-cost, opening the door to sustainable, brain-like computing.</description>
			<pubDate>Sun, 26 Oct 2025 10:59:48 EDT</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/10/251026021724.htm</guid>
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			<title>Quantum crystals could spark the next tech revolution</title>
			<link>https://www.sciencedaily.com/releases/2025/10/251015230945.htm</link>
			<description>Auburn scientists have designed new materials that manipulate free electrons to unlock groundbreaking applications. These “Surface Immobilized Electrides” could power future quantum computers or transform chemical manufacturing. Stable, tunable, and scalable, they represent a leap beyond traditional electrides. The work bridges theory and potential real-world use.</description>
			<pubDate>Thu, 16 Oct 2025 02:09:02 EDT</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/10/251015230945.htm</guid>
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			<title>Quantum simulations that once needed supercomputers now run on laptops</title>
			<link>https://www.sciencedaily.com/releases/2025/10/251011105515.htm</link>
			<description>A team at the University at Buffalo has made it possible to simulate complex quantum systems without needing a supercomputer. By expanding the truncated Wigner approximation, they’ve created an accessible, efficient way to model real-world quantum behavior. Their method translates dense equations into a ready-to-use format that runs on ordinary computers. It could transform how physicists explore quantum phenomena.</description>
			<pubDate>Sun, 12 Oct 2025 01:11:43 EDT</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/10/251011105515.htm</guid>
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			<title>Quantum chips just proved they’re ready for the real world</title>
			<link>https://www.sciencedaily.com/releases/2025/09/250927031230.htm</link>
			<description>Diraq has shown that its silicon-based quantum chips can maintain world-class accuracy even when mass-produced in semiconductor foundries. Achieving over 99% fidelity in two-qubit operations, the breakthrough clears a major hurdle toward utility-scale quantum computing. Silicon’s compatibility with existing chipmaking processes means building powerful quantum processors could become both cost-effective and scalable.</description>
			<pubDate>Sun, 28 Sep 2025 07:00:14 EDT</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/09/250927031230.htm</guid>
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			<title>The quantum internet just went live on Verizon’s network</title>
			<link>https://www.sciencedaily.com/releases/2025/09/250925025409.htm</link>
			<description>Penn engineers have taken quantum networking from the lab to Verizon’s live fiber network, using a silicon “Q-chip” that speaks the same Internet Protocol as the modern web. The system pairs classical and quantum signals like a train engine with sealed cargo, ensuring routing without destroying quantum states. By maintaining fidelity above 97% even under real-world noise, the approach shows that a scalable quantum internet is possible using today’s infrastructure.</description>
			<pubDate>Fri, 26 Sep 2025 02:38:45 EDT</pubDate>
			<guid isPermaLink="true">https://www.sciencedaily.com/releases/2025/09/250925025409.htm</guid>
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